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Molecular dynamics in nanostructured polyimide-silica hybrid materials and their thermal stability

机译:纳米结构聚酰亚胺-二氧化硅杂化材料的分子动力学及其热稳定性

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Molecular motion and thermal stability in two series of nanophase-separated polyimide-silica (PI-SiO2) hybrid materials with chemically bound components were studied. The hybrids were synthesized from p-aminophenyltrimethoxysilane-terminated poly(amic acid)s as PI precursors and tetramethoxysilane as a silica precursor via a sol-gel process. The hybrids differed in their PI chemical structure and chain length (number-average molecular weight = 5.000, 7.500, or 10.000) and in their SiO2 content, which ranged from 0 to 50 wt %. Differential scanning calorimetry, laser-interferometric creep rate spectroscopy, and thermally stimulated depolarization current techniques were used for studying the dynamics from 100 to 650 K and from 10(-3) to 10(-2) Hz. Comparative thermogravimetric measurements were also carried out from 300 to 900 K. Silica nano- or submicrodomains that formed affected PI dynamics in two opposite directions. Because of the loosening of the molecular packing of PI chains confined to nanometer-scale spaces between silica constraints, an enhancement of small-scale motion, mostly at temperatures below the beta-relaxation region, occurred. However, a partial or total suppression of segmental motion could be observed above the beta-relaxation temperature, drastically so for the shortest PI chains at elevated silica contents and within or close to the glass-transition range, because of the covalent anchoring of chain ends to silica domains. Large changes in thermal stability, including a 2.5-fold increase in the apparent activation energy of degradation, were observed in the hybrids studied. A greater than 100 degreesC rise in long-term thermal stability could be predicted for some hybrids with respect to pure PI. (C) 2002 Wiley Periodicals, Inc. [References: 62]
机译:研究了两种具有化学键合成分的纳米相分离的聚酰亚胺-二氧化硅(PI-SiO2)杂化材料系列的分子运动和热稳定性。通过溶胶-凝胶法,由对氨基苯基三甲氧基硅烷封端的聚(酰胺酸)作为PI前体和四甲氧基硅烷作为二氧化硅前体合成杂化物。杂化物的PI化学结构和链长(数均分子量= 5.000、7.500或10.000)和SiO2含量在0至50 wt%范围内。差示扫描量热法,激光干涉蠕变率光谱法和热激发去极化电流技术用于研究100至650 K和10(-3)至10(-2)Hz的动力学。还从300至900 K进行了比较热重测量。形成了两个相反方向的受影响PI动态的二氧化硅纳米或亚微区。由于限制在二氧化硅约束之间的纳米级空间的PI链分子堆积的松动,小规模运动的增强发生了,主要是在β-松弛区以下的温度下。然而,在β-松弛温度以上,可以观察到部分或全部节段运动的抑制,这是由于链端的共价锚定,因此对于二氧化硅含量较高且在或接近玻璃化转变范围的最短PI链而言,这是非常明显的。硅胶领域。在研究的杂种中观察到热稳定性的大变化,包括降解的表观活化能增加了2.5倍。相对于纯PI,可以预测某些杂种的长期热稳定性会提高100摄氏度以上。 (C)2002 Wiley Periodicals,Inc. [参考:62]

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